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Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation

机译:掺入流体结构相互作用和微循环的动脉血流动力学中的数值模拟

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The effects of arterial wall compliance on blood flow have been revealed using fluid-structure interaction in last decades. However, microcirculation is not considered in previous researches. In fact, microcirculation plays a key role in regulating blood flow. Therefore, it is very necessary to involve microcirculation in arterial hemodynamics. The main purpose of the present study is to investigate how wall compliance affects the flow characteristics and to establish the comparisons of these flow variables with rigid wall when microcirculation is considered. We present numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation. A novel outlet boundary condition is employed to prescribe microcirculation in an idealised model. The novel finding in this work is that wall compliance under the consideration of microcirculation leads to the increase of wall shear stress in contrast to rigid wall, contrary to the traditional result that wall compliance makes wall shear stress decrease when a constant or time dependent pressure is specified at an outlet. This work provides the valuable study of hemodynamics under physiological and realistic boundary conditions and proves that wall compliance may have a positive impact on wall shear stress based on this model. This methodology in this paper could be used in real model simulations.
机译:过去几十年的流体结构相互作用揭示了动脉壁依从性对血流的影响。然而,以前的研究中不考虑微循环。事实上,微循环在调节血液流动中起着关键作用。因此,涉及动脉血流动力学中的微循环是非常必要的。本研究的主要目的是研究壁规范度如何影响流动特性,并在考虑微循环时与刚性壁建立这些流量变量的比较。我们在掺入流体结构相互作用和微循环的动脉血流动力学中呈现数值模拟。采用新颖的出口边界条件在理想化模型中规定微循环。在这项工作中的新颖发现是,在考虑微循环的墙上的符合性导致墙面剪切应力的增加与刚性墙相反,与墙壁顺应性使壁剪切应力变化的传统结果相反,当恒定或时间依赖性压力时在出口处指定。这项工作在生理和现实边界条件下提供了对血流动力学的宝贵研究,并证明了基于该模型的墙壁遵守对墙剪应力产生正影响。本文的这种方法可用于真实的模型模拟。

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